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Large Scale Production of Continuous Hydrogel Fibers with Anisotropic Swelling Behavior by Dynamic-Crosslinking-Spinning

  • Kai Hou
  • , Huiyi Wang
  • , Yunyin Lin
  • , Shaohua Chen
  • , Shengyuan Yang
  • , Yanhua Cheng
  • , Benjamin S. Hsiao
  • , Meifang Zhu
  • Donghua University

Research output: Contribution to journalArticlepeer-review

42 Scopus citations

Abstract

Hydrogel microfibers have been considered as a potential biomaterial to spatiotemporally biomimic 1D native tissues such as nerves and muscles which are always assembled hierarchically and have anisotropic response to external stimuli. To produce facile hydrogel microfibers in a mathematical manner, a novel dynamic-crosslinking-spinning (DCS) method is demonstrated for direct fabrication of size-controllable fibers from poly(ethylene glycol diacrylate) oligomer in large scale, without microfluidic template and in a biofriendly environment. The diameter of fibers can be precisely controlled by adjusting the spinning parameters. Anisotropic swelling property is also dependent on inhomogeneous structure generated in spinning process. Comparing with bulk hydrogels, the resulting fibers exhibit superior rapid water adsorption property, which can be attributed to the large surface area/volume ratio of fiber. This novel DCS method is one-step technology suitable for large-scale production of anisotropic hydrogel fibers which has a promising application in the area such as biomaterials. (Figure presented.).

Original languageEnglish
Pages (from-to)1795-1801
Number of pages7
JournalMacromolecular Rapid Communications
Volume37
Issue number22
DOIs
StatePublished - Nov 1 2016

Keywords

  • anisotropic swelling
  • biomaterials
  • hydrogel
  • hydrogel fibers
  • rapid swelling

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